Automatic classification of speech and music using neural networks

M. K. S. Khan, W. Al-Khatib, M. Moinuddin
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引用次数: 20

Abstract

The importance of automatic discrimination between speech signals and music signals has evolved as a research topic over recent years. The need to classify audio into categories such as speech or music is an important aspect of many multimedia document retrieval systems. Several approaches have been previously used to discriminate between speech and music data. In this paper, we propose the use of the mean and variance of the discrete wavelet transform in addition to other features that have been used previously for audio classification. We have used Multi-Layer Perceptron (MLP) Neural Networks as a classifier. Our initial tests have shown encouraging results that indicate the viability of our approach.
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使用神经网络的语音和音乐自动分类
近年来,语音信号与音乐信号自动识别的重要性逐渐成为一个研究课题。需要将音频分类为语音或音乐等类别是许多多媒体文档检索系统的一个重要方面。以前有几种方法被用来区分语音和音乐数据。在本文中,我们建议使用离散小波变换的均值和方差以及之前用于音频分类的其他特征。我们使用多层感知器(MLP)神经网络作为分类器。我们的初步测试显示出令人鼓舞的结果,表明我们的方法是可行的。
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